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Cytoskeletal Proteins in Bacteria01:29

Cytoskeletal Proteins in Bacteria

Bacterial cells were initially considered simple, randomly organized structures lacking a cytoskeleton. However, the discovery of cytoskeleton homologs in bacteria led to the change of this opinion. Bacterial cytoskeletal filaments regulate the cell shape, cell polarity, cell division, and partitioning of plasmids during cell division. It was later discovered that bacterial cytoskeletal proteins, mainly actin and tubulin homologs, are diverse compared to their eukaryotic counterparts. On the...
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The native conformation of a protein is formed by interactions between the side chains of its constituent amino acids. When the amino acids cannot form these interactions, the protein cannot fold by itself and needs chaperones. Notably, chaperones do not relay any additional information required for the folding of polypeptides; the native conformation of a protein is determined solely by its amino acid sequence. Chaperones catalyze protein folding without being a part of the folded protein.
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The Contractile Ring02:15

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Related Experiment Video

Updated: Jun 22, 2026

Three-dimensional Imaging of Bacterial Cells for Accurate Cellular Representations and Precise Protein Localization
06:33

Three-dimensional Imaging of Bacterial Cells for Accurate Cellular Representations and Precise Protein Localization

Published on: October 29, 2019

Pulling helices inside bacteria: imperfect helices and rings.

Jun F Allard1, Andrew D Rutenberg

  • 1Institute of Applied Mathematics, University of British Columbia, Vancouver, British Columbia, Canada, V6T 1Z2.

Physical Review Letters
|June 13, 2009
PubMed
Summary

Researchers explored how forces shape bacterial protein filaments into helical structures. Azimuthal forces are key for the small pitches seen in MreB filaments, suggesting protein bundling influences bacterial cell shape.

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Last Updated: Jun 22, 2026

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Area of Science:

  • Biophysics
  • Cell Biology
  • Structural Biology

Background:

  • Bacterial rod shape is maintained by internal protein filaments.
  • The MreB protein forms helical structures within bacteria.
  • Understanding filament mechanics is crucial for bacterial morphology.

Purpose of the Study:

  • To investigate steady-state configurations of elastic filaments within bacteria.
  • To determine the role of applied forces in filament helical formation.
  • To explain the small pitches observed in MreB filaments.

Main Methods:

  • Theoretical modeling of elastic filaments under force.
  • Analysis of steady-state configurations.
  • Comparison with experimental observations of MreB filaments.

Main Results:

  • Axial or azimuthal forces at filament ends create perfect helices.
  • Azimuthal forces are necessary for the small pitches of MreB filaments.
  • Distributed forces can lead to helix-like structures, rings, and imperfect helices.
  • Coexistence of different configurations is possible.

Conclusions:

  • Azimuthal forces are critical for MreB filament structure and bacterial shape.
  • Protein expression levels and bundling may regulate filament configurations.
  • This work provides insights into the physical mechanisms governing bacterial morphogenesis.